A method of an electronic device is provided. The method includes receiving signals from adjacent base stations comprising a first base station and a second base station, respectively, detecting a first synchronization signal and a second synchronization signal for the first base station among the received signals, estimating a first signal corresponding to the detected first synchronization signal and second synchronization signal, eliminating the first signal among the signals received from the adjacent base stations, and detecting a second signal for the second base station.
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1. A method for operating an electronic device, the method comprising:
receiving signals from a plurality of base stations (BSs) including a first bs and a second bs;
determining a first symbol boundary for the first bs that is identified based on a strength of each of the received signals among the plurality of BSs;
determining, based on the determined first symbol boundary, a cell identifier of the first bs by detecting a first synchronization signal and a second synchronization signal of the first bs from the received signals;
estimating first signals corresponding to the first synchronization signal and the second synchronization signal of the first bs transmitted through a channel, by performing channel estimation with the determined cell identifier;
transforming the estimated first signals from a frequency domain to a time domain;
removing the transformed first signals from the received signals in the time domain; and
detecting a first synchronization signal and a second synchronization signal of the second bs from remaining signals in which the transformed first signals are removed,
wherein the detecting of the first synchronization signal and the second synchronization signal of the second bs comprises determining a second symbol boundary for the second bs which is different from the first symbol boundary for the first bs in the time domain.
9. An electronic device comprising:
at least one transceiver configured to receive signals from a plurality of base stations (BSs) including a first bs and a second bs; and
at least one processor operably coupled to the at least one transceiver, configured to:
determine a first symbol boundary for the first bs that is identified based on a strength of each of the received signals among the plurality of BSs;
determine, based on the determined first symbol boundary, a cell identifier of the first bs by detecting a first synchronization signal and a second synchronization signal of the first bs from the received signals;
estimate first signals corresponding to the first synchronization signal and the second synchronization signal of the first bs transmitted through a channel, by performing channel estimation with the determined cell identifier;
transform the estimated first signals from a frequency domain to a time domain;
remove the transformed first signals from the received signals in the time domain; and
detect a first synchronization signal and a second synchronization signal of the second bs from remaining signals in which the transformed first signals are removed,
wherein, to detect the first synchronization signal and the second synchronization signal of the second bs, the at least one processor is further configured to determine a second symbol boundary for the second bs which is different from the first symbol boundary for the first bs in the time domain.
2. The method of
3. The method of
wherein the first synchronization signal of the first bs comprises a primary synchronization signal (PSS) of the first bs,
wherein the first synchronization signal of the second bs comprises a primary synchronization signal (PSS) of the second bs,
wherein the second synchronization signal of the first bs comprises a secondary synchronization signal (SSS) of the first bs, and
wherein the second synchronization signal of the second bs comprises a secondary synchronization signal (SSS) of the second bs.
4. The method of
if strengths of second signals corresponding to the first synchronization signal and the second synchronization signal of the second bs exceed a designated threshold, removing the second signals from the received signals; and
if the strengths of the second signals for the second bs do not exceed the designated threshold, stopping an operation of detecting a synchronization signal.
5. The method of
6. The method of
wherein the determining of the cell identifier of the first bs comprises:
detecting an identifier in a cell group based on the first synchronization signal of the first bs;
performing a FFT for the received signals after the detecting the identifier in the cell group; and
detecting a cell group identifier indicating the cell group based on the second synchronization signal of the first bs, and
wherein the cell identifier is specified by the identifier in the cell group and the cell group identifier.
7. The method of
8. The method of
determining a new symbol boundary by applying a successive interference cancellation (SIC) in the time domain.
10. The electronic device of
11. The method of
wherein the first synchronization signal of the first bs comprises a primary synchronization signal (PSS) of the first bs,
wherein the first synchronization signal of the second bs comprises a primary synchronization signal (PSS) of the second bs,
wherein the second synchronization signal of the first bs comprises a secondary synchronization signal (SSS) of the first bs, and
wherein the second synchronization signal of the second bs comprises a secondary synchronization signal (SSS) of the second bs.
12. The electronic device of
if strengths of second signals corresponding to the first synchronization signal and the second synchronization signal of the second bs exceeds a designated threshold, remove the second signals from the received signals; and
if the strengths of the second signals for the second bs does not exceed the designated threshold, stop an operation of detecting a synchronization signal.
13. The electronic device of
14. The electronic device of
wherein, to determine the cell identifier, the at least one processor is further configured to:
detect an identifier in a cell group based on the first synchronization signal of the first bs;
perform a FFT for the received signals after the detection of the identifier in the cell group; and
detect a cell group identifier indicating the cell group based on the second synchronization signal of the first bs, and
wherein the cell identifier is specified by the identifier in the cell group and the cell group identifier.
15. The electronic device of
16. The electronic device of
determine a new symbol boundary by applying a successive interference cancellation (SIC) in the time domain.
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This application claims the benefit under 35 U.S.C. § 119(a) of a Korean patent application filed on May 8, 2015 in the Korean Intellectual Property Office and assigned Serial number 10-2015-0064565, the entire disclosure of which is hereby incorporated by reference.
The present disclosure relates to synchronization signal detection control in a communication system.
Recently, the release 13 standard is trying to reflect a licensed assisted access (LAA, commonly called LTE-U) which is a service making use of an unlicensed band (e.g., 5 Giga Hertz (GHz)) in long term evolution (LTE). Also, LTE release 12 is already supporting discovery reference signal (D-RS) or radio interface-based synchronization (RIBS), etc. Accordingly, synchronization in not only an existing terminal but also a small cell base station, etc. has become a very important function.
A synchronization process is a process in which, when a terminal or small cell base station powers on, the terminal or small cell base station finds a symbol boundary, a frame boundary with an adjacent base station in order to provide a data service. By finding the symbol boundary, frame boundary, the terminal or small cell base station can get cell IDentification (CID) information of each base station in a situation in which several base stations exist.
In a case where several cell identifications exist and a symbol and frame synchronization by each cell identification is different, a synchronization system searches the symbol and frame synchronization by cell identification, and detects a cell identification in a synchronization and non-synchronization cell identification detection method. In this case, when searching a frame synchronization by cell identification, the synchronization system can be influenced by a cell identification having strong transmission power. The cell identification having the strong transmission power can lead to an increase of a search failure signal, deteriorating the symbol and frame synchronization and the performance of cell identification detection. Particularly, there is a difference of a time point of reception of a base station synchronization signal and thus, the more the power of an interference signal escaping a cyclic prefix (CP), accurate symbol synchronization estimation is not achieved, so performance deterioration can take place.
The above information is presented as background information only to assist with an understanding of the present disclosure. No determination has been made, and no assertion is made, as to whether any of the above might be applicable as prior art with regard to the present disclosure.
Aspects of the present disclosure are to address at least the above-mentioned problems and/or disadvantages and to provide at least the advantages described below. Accordingly, an aspect of the present disclosure is to provide an apparatus and method for eliminating performance deterioration that can take place in a synchronization process in a communication system.
Another aspect of the present disclosure is to provide an apparatus and method for controlling synchronization signal detection in a communication system.
In accordance with an aspect of the present disclosure, a method of an electronic device is provided. The method includes receiving signals from adjacent base stations comprising a first base station and a second base station, respectively, detecting a first synchronization signal and a second synchronization signal for the first base station among the received signals, estimating a first signal corresponding to the first synchronization signal and the second synchronization signal, eliminating the first signal among the received signals, and detecting a second signal for the second base station having a different symbol boundary from the first base station.
In accordance with another aspect of the present disclosure, an electronic device is provided. The electronic device includes a reception unit configured to receive signals from adjacent base stations comprising a first base station and a second base station, respectively, and a controller configured to detect a first synchronization signal and a second synchronization signal for the first base station among the received signals, estimate a first signal corresponding to the first synchronization signal and the second synchronization signal, eliminate the first signal among the received signals, and detect a second signal for the second base station.
Other aspects, advantages, and salient features of the disclosure will become apparent to those skilled in the art from the following detailed description, which, taken in conjunction with the annexed drawings, discloses various embodiments of the present disclosure.
The above and other aspects, features, and advantages of certain embodiments of the present disclosure will be more apparent from the following description taken in conjunction with the accompanying drawings, in which:
Throughout the drawings, like reference numerals will be understood to refer to like parts, components, and structures.
The following description with reference to the accompanying drawings is provided to assist in a comprehensive understanding of various embodiments of the present disclosure as defined by the claims and their equivalents. It includes various specific details to assist in that understanding but these are to be regarded as merely exemplary. Accordingly, those of ordinary skill in the art will recognize that various changes and modifications of the various embodiments described herein can be made without departing from the scope and spirit of the present disclosure. In addition, descriptions of well-known functions and constructions may be omitted for clarity and conciseness.
The terms and words used in the following description and claims are not limited to the bibliographical meanings, but, are merely used by the inventor to enable a clear and consistent understanding of the present disclosure. Accordingly, it should be apparent to those skilled in the art that the following description of various embodiments of the present disclosure is provided for illustration purpose only and not for the purpose of limiting the present disclosure as defined by the appended claims and their equivalents.
It is to be understood that the singular forms “a,” “an,” and “the” include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to “a component surface” includes reference to one or more of such surfaces.
In the following description, a term denoting control information, a term denoting a multiple-antenna signal processing scheme, a term (e.g., a domain, detection, estimation) denoting a status change, a term denoting a transmission signal, terms denoting network entities, terms (e.g., a signal, a first signal, an estimation signal) denoting messages, and a term denoting a constituent element of an apparatus, etc. are exemplified for description convenience. Accordingly, the present disclosure is not limited to the terms described later, and may use other terms having equivalent technological meanings.
The present disclosure describes a technology for controlling synchronization signal detection in a communication system. For example, the present disclosure relates to a technology for, when several base stations have been installed, controlling synchronization signal detection in a condition having to detect a synchronization and cell identification by each base station.
Referring to
In case of performing synchronization estimation for synchronization, a sum of signals that the electronic device 200 receives from the adjacent cells 110, 120, and 130 may be expressed as in Equation 1 below.
yPSS(n)=h0(n)PSS0(n)+h1(n)PSS1(n+τ1)+h2(n)PSS2(n+τ2)+w(n) (1)
Equation 1
In Equation 1, yPSS denotes a signal summing up signals received from base stations, hi(n) denotes a reception path fading signal for a synchronization signal of an ith base station, PSSi(n) denotes a primary synchronization signal (PSS) signal of an nth sample received from each ith base station, and w(n) denotes a white noise. Equation 1 may be an expression in a time domain. Here, a method of finding a boundary of a PSS symbol in a general synchronization process is to determine a correlation between the reception signal yPSS and the PSS signal and find a boundary of a symbol of a PSS that exceeds a constant threshold value. For example, a correlation value for PSS0 is given as r0 and determined using Equation 2, given below.
In Equation 2,
That is, Equation 2 shows a correlation value between respective base station synchronization signals (PSS) in consideration of a delay between reception paths. In this case, because a reception signal of the number 1 cell 120 of
Referring to
The communication unit 210 performs a function for transmitting/receiving a signal. The communication unit 210 transmits/receives a signal provided from the controller and the storage unit 230. The communication unit 210 may perform a function for transmitting a signal or receiving a signal through a wireless channel. For example, the communication unit 210 may perform a function of conversion between a baseband signal and a bit stream in compliance with the physical layer standard of a system. For example, in case of transmitting data, the communication unit 210 may encode and modulate a transmission bit stream, thereby generating complex symbols. Also, in case of receiving data, the communication unit 210 may demodulate and decode a baseband signal, thereby restoring to a reception bit stream. The communication unit 210 may up convert a baseband signal into a radio frequency (RF) band signal and transmit through an antenna. The communication unit 210 may down convert an RF band signal received through the antenna, into a baseband signal. For example, the communication unit 210 may include a transmission filter, a reception filter, an amplifier, a mixer, an oscillator, a digital analog converter (DAC), an analog digital converter (ADC), etc. According to need, the communication unit 210 may be denoted as a transmission unit (end), a reception unit (end), or a transmission/reception unit (end).
The communication unit 210 may receive a signal from at least one base station. The signal may include a synchronization signal of each at least one base station. The synchronization signal may include at least one of a PSS and a secondary synchronization signal (SSS).
The storage unit 230 stores a basic program for an operation of the apparatus for controlling the synchronization signal detection, an application program, data of setting information, etc. For example, the storage unit 230 may store information related with a synchronization signal. The storage unit 230 may provide stored data in accordance with a request of the controller 220.
The controller 220 controls the general operations of the apparatus for controlling the synchronization signal detection. For example, the controller 220 controls the synchronization signal detection control apparatus to perform procedures illustrated in
The synchronization detection controller 222 detects a cell identification within a group from a PSS of a base station having a signal of the greatest strength among signals received from adjacent base stations. The synchronization detection controller 222 performs fast Fourier transform (FFT) for the signal. Accordingly, as the FFT is performed, the signal that is a time-domain signal is transformed into a frequency-domain signal. The synchronization detection controller 222 acquires information about an SSS of the base station of the signal of the greatest strength and then detects a cell group identification using the acquired SSS information. The synchronization detection controller 222 estimates a channel using the SSS. By using the estimated channel and the detected cell identification, the synchronization detection controller 222 estimates a first signal corresponding to the PSS and the SSS. The estimated first signal is used to detect a cell identification of another base station having the same symbol boundary. The synchronization detection controller 222 may determine whether to eliminate a synchronization signal of another cell. The synchronization detection controller 222 performs inverse fast Fourier transform (IFFT) for the estimated first signal and transforms the estimated first signal that is a frequency-domain signal into a time-domain signal. The synchronization detection controller 222 may eliminate the estimated first signal among signals received from adjacent base stations, thereby eliminating the PSS and the SSS. By eliminating the PSS and the SSS, the synchronization detection controller 222 may eliminate the first signal of the greatest strength among the received signals.
Referring to
The synchronization detection unit 310 may detect a symbol boundary and a PSS of a base station having a signal of the greatest signal strength. Through the detected PSS, the synchronization detection controller 222 may know a cell identification within one cell identification group and a position of an SSS. The synchronization detection unit 310 performs FFT for the signal of the greatest signal strength acquiring an identification number within the cell identification group. The FFT'd signal that is a time-domain signal is transformed into a frequency-domain signal. The synchronization detection unit 310 may acquire information about the SSS from the FFT'd signal and then detect the SSS. By detecting the SSS, the synchronization detection unit 310 may be aware of an identification of a cell group. The synchronization detection unit 310 may acquire the identification of the cell group and the identification number within the cell identification group from the PSS and the SSS, and detect the cell identification (referring to Equation 3 below). The synchronization detection controller 222 performs channel estimation using information acquired through the synchronization detection unit 310.
The interference cancellation unit 320 may estimate a signal corresponding to the PSS and the SSS using the estimated channel information and the cell identification information. The synchronization detection controller 222 performs IFFT for the estimated signal corresponding to the PSS and the SSS in a base station signal of a cell identification of the greatest signal strength. In a case where the synchronization detection controller 222 receives signals from adjacent cells having symbol boundaries different from the base station of the greatest signal strength, the synchronization detection controller 222 may eliminate the PSS and the SSS of the base station of the greatest signal strength from the received signals, thereby performing synchronization detection.
The present disclosure may be applied to a long term evolution (LTE) communication system. In the LTE standard, a structure of a synchronization signal may be varied according to a frequency division duplex (FDD) mode or a time division duplex (TDD) mode. The present disclosure describes the LTE system for example, but the present disclosure is not limited to the LTE system only. It may be recognized by those skilled in the art that the present disclosure may be applied to other communication systems as well as the LTE system.
The structure of the synchronization signal may be constructed as in
An SSS is comprised of a binary phase shift keying (BPSK) signal that is generated using a pseudo-random noise (PN) sequence. A total length of the PSS and the SSS is 62 symbols. Accordingly, the PSS and the SSS may be physically mapped to 62 subcarriers.
According to various embodiments, a method for operating an electronic device, the method comprises, receiving signals from adjacent base stations comprising a first base station and a second base station, respectively, detecting a first synchronization signal and a second synchronization signal for the first base station among the received signals, estimating a first signal corresponding to the first synchronization signal and the second synchronization signal, and detecting a second signal for the second base station by eliminating the first signal from the received signals.
According to various embodiments, the method further comprises performing Inverse Fast Fourier transform (IFFT) for the first signal.
According to various embodiments, the first base station comprises a base station corresponding to a signal having the greatest strength among the signals of the adjacent base stations.
According to various embodiments, the first synchronization signal comprises a primary synchronization signal (PSS), and the second synchronization signal comprises a secondary synchronization signal (SSS).
According to various embodiments, a first symbol boundary corresponding to the first signal for the first base station and a second symbol boundary corresponding to the second signal for the second base station are different.
According to various embodiments, if a strength of the second signal for the second base station does not exceed a designated threshold value, eliminating from the received signals a synchronization signal for at least one base station different from the first base station and the second base station among the adjacent base stations. If the strength of the second signal for the second base station exceeds the designated threshold value, stopping an operation of detecting a synchronization signal.
According to various embodiments, the first synchronization signal comprises information for a number of a cell identifier within one cell group. The second synchronization signal comprises information for a number of a cell group identifier.
According to various embodiments, the eliminating of the first signal among the received signals is performed in a time domain.
According to various embodiments, the second base station comprises a base station corresponding to a signal having the second-greatest strength after the first signal among the signals received from the adjacent base stations.
According to various embodiments, the method further comprises determining a duplexing mode using a position of the first synchronization signal and a position of the second synchronization signal within a frame. The duplexing mode is a frequency division duplex (FDD) or a time division duplex (TDD).
According to various embodiments, the first synchronization signal may be generated by Zadoff-Chu sequence, and the second synchronization signal may be generated by Pseudo random Noise (PN) sequence.
According to various embodiments, the method comprises, in order to detect the first synchronization signal, determining a correlation between the received signals and the first synchronization signal, and detecting the first synchronization signal if the correlation exceeds a threshold value.
According to an embodiment of the present disclosure, a synchronization signal of FDD and TDD LTE may be used to find a symbol and frame boundary. Also, the synchronization signal may be used to detect a cell identification that is used when decoding a data channel such as a physical broadcast channel (PBCH), etc.
In case of FDD and TDD, positions of a PSS and an SSS are different from each other and thus, in a case where a duplexing mode is not known, the electronic device 200 may know the duplexing mode using the positions of the PSS and the SSS.
Referring to
Referring to
The GP 527 is a period of canceling interference that is generated in uplink due to a multiple path delay of a downlink signal between uplink and downlink. In the TDD LTE PSS/SSS structure, PSSs are transmitted at third symbols (within the DwPTS) of the number 1 subframe and a number 6 subframe, and SSSs are transmitted at the last symbols (earlier three symbols than the PSSs) of the number 0 subframe and a number 5 subframe. An example of the number 1 subframe is the number 1 subframe 520, and an example of the number 0 subframe is the number 0 subframe 510. According to an embodiment of the present disclosure, the electronic device 200 may detect a PSS and an SSS of a base station of the greatest signal strength among signals received from adjacent base stations and, through this, acquire an identification of a corresponding cell. Thereafter, the electronic device 200 may eliminate a signal of the corresponding cell and search a signal of an adjacent cell.
Referring to
In block 620, the electronic device 200 detects an identification within a cell group of a cell of which the signal has the greatest signal strength in order to control the signal of the cell.
An LTE technology defines 504 cell identifications different from one another. Each of the cell identifications corresponds to a reference signal sequence of downlink. The cell identification includes 168 cell identification groups, each group including three identifications. Accordingly, the cell identification may be expressed as in Equation 3 below.
CID(n)=3NID1+NID2 (3)
Equation 3
In Equation 3, the CID denotes a cell identification, the NID1 denotes an identification of one group, and the NID2 denotes an identification within the group that is identified by the NID1.
To detect the cell identification, the electronic device 200 may identify an identification (NID2) (for example, 0, 1, 2) within a cell group, from a PSS sequence received from a base station. A PSS of one cell may have three different values in accordance with a cell identification. Three cell identifications within one cell identification group correspond to PSSs different from one another, respectively.
Based on the detected PSS, the electronic device 200 may be aware of a 5 ms timing of the cell. The electronic device 200 may be aware of a position of an SSS that is earlier by a fixed offset than the PSS. According to an embodiment of the present disclosure, the electronic device 200 may control a cell signal of the greatest signal strength so as to reduce the influence of a cell identification of the greatest signal strength.
After identifying the identification within the cell group, in block 630, the electronic device 200 performs FFT for a signal. The signal that is a time-domain signal is FFT transformed into a frequency-domain signal.
The electronic device 200 acquires information about the SSS using the frequency-domain signal into which the time-domain signal is transformed. And, in block 640, the electronic device 200 detects the SSS.
Because the PSS is transmitted every 5 ms, the electronic device 200 may know that a subframe used for detection is one of a zeroth subframe and a fifth subframe, by detecting the PSS. However, the electronic device 200 may not exactly know if the corresponding subframe is the zeroth subframe or the fifth subframe. The electronic device 200 may not recognize a frame boundary by the PSS only. Accordingly, by detecting an SSS, the electronic device 200 may detect the frame boundary. By detecting the SSS, the electronic device 200 may be aware of the frame boundary. Also, by detecting the SSS, the electronic device 200 may be aware of the cell group (NID1). Accordingly, by acquiring information of the identification (NID2) within the cell group and the identification group (NID1), the electronic device 200 may know a cell identification of a corresponding cell.
In block 650, by using information of the detected SSS, the electronic device 200 may estimate a channel of the SSS.
In block 660, by using the channel estimated in block 650 and the detected cell identification, the electronic device 200 estimates a signal corresponding to the PSS and the SSS.
The estimated signal may be the first signal of
Through the signal estimated in block 660, the electronic device 200 may eliminate an interference of an SSS sequence of a greatest signal strength within the same symbol boundary in a frequency domain. According to an embodiment of the present disclosure, the electronic device 200 may not merely eliminate the interference of the SSS sequence of the greatest signal strength within the same symbol boundary but also eliminate a mutual interference between cells having different symbol boundaries.
In block 670, the electronic device 200 performs IFFT for a signal. By performing the IFFT for the signal estimated in block 660, the electronic device 200 may transform the signal that is a frequency-domain signal into a time-domain signal.
The electronic device 200 may use the transformed time-domain signal, for new symbol boundary and PSS detection. The signal is a signal eliminating the PSS and the SSS of the cell of the greatest signal strength among cells adjacent to the electronic device 200. In
When the electronic device 200 again estimates symbol synchronization, the electronic device 200 may not re-estimate symbol synchronization in a time domain, for a synchronization signal ranging within a cyclic prefix (CP). The electronic device 200 may correct a timing offset in a frequency domain and estimate a cell identification corresponding to a new symbol boundary and PSS.
Referring to
Referring to
Referring to
By using a signal corresponding to a PSS and an SSS estimated through blocks 610 to 660 of
According to an embodiment of the present disclosure, the cell signal elimination procedure may be carried out for cells having signals of strengths exceeding a threshold value among detected signals. The cell signal elimination procedure may be no longer carried out in a case where there is no cell exceeding the threshold value after eliminating of the cell signal.
Referring to
In operation 920, the electronic device 200 detects a cell identification (NID2) within a group from the detected PSS of the base station.
In operation 930, the electronic device 200 performs FFT for the signal. According as the FFT is performed, the time-domain signal is transformed into a frequency-domain signal.
In operation 940, the electronic device 200 acquires information about an SSS of the base station of which has the greatest signal strength and thereafter, detects a cell group identification using the information about the SSS.
In operation 950, the electronic device 200 performs channel estimation using the detected SSS. The electronic device 200 may check the cell group identification and the identification within the cell group and detect a cell identification and thereafter, estimate a channel through the detected cell identification.
In operation 960, the electronic device 200 uses the estimated channel and the detected cell identification, to estimate a signal corresponding to the PSS and the SSS. The signal corresponding to the PSS and the SSS may be the first signal of
In operation 970, the electronic device 200 determines whether to perform synchronization signal elimination for another cell. The electronic device 200 may perform synchronization signal elimination for a signal synthesizing signals received from adjacent base stations, in order of strengths of the received signals. The electronic device 200 may compare the strengths of the signals received from the adjacent base stations with a set threshold value, and repeatedly perform the synchronization signal elimination until the strengths of the received signals do not exceed the set threshold value. For example, the electronic device 200 may determine whether a strength of the first signal exceeds the threshold value.
In operation 980, the electronic device 200 performs IFFT for the estimated signal corresponding to the PSS and the SSS. By performing the IFFT, the electronic device 200 transforms a frequency-domain signal into a time-domain signal.
In operation 990, the electronic device 200 eliminates a signal into which the first signal is IFFT transformed, among signals received from adjacent cells. A signal eliminating the IFFT'd estimated signal corresponding to the PSS and the SSS among the signals received from the adjacent cells may be a signal eliminating a signal corresponding to an identification of the greatest signal strength among the received signals.
Referring to
In operation 1020, the electronic device 200 may estimate a first signal corresponding to the first synchronization signal and the second synchronization signal. The electronic device 200 may detect a cell identification from the detected first synchronization signal and second synchronization signal, and estimate a channel By using the estimated channel and the detected cell identification, the electronic device 200 may estimate the first signal corresponding to the first synchronization signal and the second synchronization signal. The first signal may be the first signal of
In operation 1030, the electronic device 200 eliminates a signal corresponding to the first signal, among the signals received from the adjacent base stations. The electronic device 200 performs IFFT for the first signal estimated in operation 1020. By the IFFT execution, the signal that is a frequency domain signal is transformed into a time domain signal. The electronic device 200 eliminates the signal into which the first signal is IFFT transformed, among the received signals.
It is characterized that a signal eliminating the IFFT′d signal is a signal eliminating a base station signal including a cell identification eliminating the PSS and the SSS.
In operation 1040, by eliminating the signal corresponding to the first signal, the electronic device 200 may detect a synchronization signal of a second base station. By using the base station signal eliminating the PSS and the SSS, the electronic device 200 may exclude the first base station corresponding to the PSS and the SSS from the adjacent base stations. The electronic device 200 may detect a base station of the greatest signal strength among the adjacent base stations excepting the first base station.
According to various embodiments of the present disclosure, unlike a successive interference cancellation (SIC) scheme in a frequency domain, the electronic device 200 may apply successive interference cancellation in a time domain, in a process of detecting a cell identification. By applying the successive interference cancellation in the time domain, the electronic device 200 may find a new symbol boundary. By applying the successive interference cancellation in the time domain and re-searching symbol synchronization, the electronic device 200 may efficiently eliminate the influence of a base station having the greatest signal strength in a process of detecting the symbol synchronization.
Methods according to various embodiments mentioned in claims of the present disclosure and/or a specification may be implemented in a form of hardware, software, or a combination of hardware and software.
In a case of implementing by software, a computer-readable storage medium storing one or more programs (software modules) may be provided. The one or more programs stored in the computer-readable storage medium are configured to be executed by one or more processors within an electronic device. The one or more programs include instructions for enabling the electronic device to execute the methods according to the embodiments mentioned in the claims and/or specification of the present disclosure.
This program (software module, software) may be stored in a random access memory, a non-volatile memory including a flash memory, a read only memory (ROM), an electrically erasable programmable read only memory (EEPROM), a magnetic disc storage device, a compact disc-ROM (CD-ROM), digital versatile discs (DVDs) or an optical storage device of another form, a magnetic cassette. Or, the program may be stored in a memory constructed in combination of some or all of them. Also, each constructed memory may be included in plural as well.
Further, the program may be stored in an attachable storage device accessible through a communication network such as the Internet, an intranet, a local area network (LAN), a wireless LAN (WLAN) and a storage area network (SAN), or a communication network constructed in combination of them. This storage device may connect to a device performing an embodiment of the present disclosure through an external port. Also, a separate storage device on the communication network may connect to a device performing an embodiment of the present disclosure as well.
In the aforementioned various embodiments of the present disclosure, constituent elements included in the disclosure have been expressed in the singular form or the plural form in accordance to a proposed embodiment. But, the expression of the singular form or plural form is selected suitable to a proposed situation for description convenience, and the present disclosure is not limited to singular or plural constituent elements. Even a constituent element expressed in the plural form may be constructed in the singular form, or even a constituent element expressed in the singular form may be constructed in the plural form.
According to an embodiment of the present disclosure, it may improve frame synchronization and cell identification detection performance in a communication system.
According to an embodiment of the present disclosure, it may improve performance deterioration that may take place in a synchronization process in a communication system.
While the present disclosure has been shown and described with reference to various embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present disclosure as defined by the appended claims and their equivalents.
Yang, Hayoung, Lee, Joohyun, Choi, Soong-Yoon, Shim, Seijoon, Choi, Chanho, Bae, Youngtaek
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
5727034, | Jul 26 1995 | NOKIA SOLUTIONS AND NETWORKS OY | Apparatus and method for synchronizing base sites individually in a communication system |
6061822, | Jun 23 1997 | U S BANK NATIONAL ASSOCIATION, AS COLLATERAL AGENT | System and method for providing a fast and efficient comparison of cyclic redundancy check (CRC/checks sum) values of two mirrored disks |
6581164, | Jan 03 2000 | Synaptics Incorporated | System for adjusting clock frequency based upon amount of unread data stored in sequential memory when reading a new line of data within a field of data |
6947402, | May 28 1999 | InterDigital Technology Corporation | User equipment for code group synchronization |
7110376, | Apr 10 2002 | TELEFONAKTIEBOLAGET L M ERICSSON PUBL | Method and apparatus for improved cell detection |
7463618, | Aug 04 2003 | Thomson Licensing | Frame synchronization in a universal mobile telephone system receiver |
7808967, | Jul 06 2007 | LG Electronics Inc.; LG Electronics Inc | Method of performing cell search in wireless communication system |
7848194, | Sep 28 2006 | Fujitsu Semiconductor Limited | Device and method for writing data |
7881343, | Oct 03 2003 | INTERDIGITAL CE PATENT HOLDINGS | Multi-network overlaid cell detection |
7907592, | Jul 06 2007 | LG Electronics Inc.; LG ELECTRONICS, INC | Method of performing cell search in wireless communication system |
7916714, | Jul 06 2007 | LG Electronics Inc.; LG ELECTRONICS, INC | Method of performing cell search in wireless communication system |
7924808, | May 17 2007 | LG Electronics Inc | Method of transmitting synchronization signal in wireless communication system |
8009661, | Jan 31 2007 | TELEFONAKTIEBOLAGET LM ERICSSON PUBL | Cell searching system and method |
8014311, | Jun 08 2009 | TELEFONAKTIEBOLAGET L M ERICSSON PUBL | Signal measurements based on sync signals |
8050225, | May 21 2007 | Qualcomm Incorporated | Assignment of primary and secondary synchronization code sequences to cells in a wireless communication system |
8054823, | Jun 18 2007 | Texas Instruments Inc | Mapping schemes for secondary synchronization signal scrambling |
8098647, | Jul 06 2007 | LG Electronics Inc. | Method of performing cell search in wireless communication system |
8155106, | Jul 06 2007 | LG Electronics Inc. | Method of performing cell search in wireless communucation system |
8174958, | Aug 01 2008 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Method and system for a reference signal (RS) timing loop for OFDM symbol synchronization and tracking |
8175077, | Jun 18 2007 | Texas Instruments Incorporated | Mapping schemes for secondary synchronization signal scrambling |
8189557, | Feb 23 2007 | Texas Instruments Inc | Secondary synchronization channel design for OFDMA systems |
8223891, | Aug 01 2008 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Method and system for a reference symbol (RS) frequency control loop for TCXO synchronization and tracking |
8249632, | Jul 19 2007 | Electronics and Telecommunications Research Institute; SAMSUNG ELECTRONICS CO , LTD | Method for generating downlink frame, and method for searching cell |
8289946, | Aug 14 2007 | Qualcomm Incorporated | Reference signal generation in a wireless communication system |
8311031, | Jul 25 2006 | Electronics and Telecommunications Research Institute | Cell search method, forward link frame transmission method, apparatus using the same and forward link frame structure |
8320565, | Jul 20 2007 | Electronics and Telecommunications Research Institute | Method for generating downlink frame, and method for searching cell |
8320571, | Jul 20 2007 | Electronics and Telecommunications Research Institute | Method for generating downlink frame, and method for searching cell |
8320907, | Dec 17 2007 | LG Electronics Inc | Method for performing cell search procedure in wireless communication system |
8331331, | Aug 03 2007 | Qualcomm Incorporated | Method and apparatus for determining cell timing in a wireless communication system |
8331564, | Jul 20 2007 | Electronics and Telecommunications Research Institute | Method for generating downlink frame, and method for searching cell |
8379542, | Mar 09 2010 | Huawei Technologies Co., Ltd. | Method and apparatus for sharing cell-ID between sites and determining cell-ID for site in cooperative communication |
8385222, | Oct 26 2009 | TELEFONAKTIEBOLAGET LM ERICSSON PUBL | Method and apparatus for channel quality derivation |
8385276, | Jul 09 2009 | Qualcomm Incorporated | Frequency tracking loop for wireless communications |
8395985, | Jul 25 2011 | Comcast Cable Communications, LLC | Time alignment in multicarrier OFDM network |
8406218, | Jul 25 2006 | Electronics and Telecommunications Research Institute | Cell search method, forward link frame transmission method, apparatus using the same and forward link frame structure |
8417252, | Oct 24 2008 | Qualcomm Incorporated | Method and apparatus for interference reporting in a N-MIMO communication system |
8428016, | Jul 11 2008 | Qualcomm Incorporated | Method and apparatus for communicating in a dominant interference scenario |
8437308, | Nov 05 2009 | TELEFONAKTIEBOLAGET LM ERICSSON PUBL | Handover measurements in a mobile communication system |
8447005, | Nov 05 2009 | TELEFONAKTIEBOLAGET L M ERICSSON PUBL | Frequency synchronization methods and apparatus |
8451740, | Apr 01 2008 | Qualcomm Incorporated | Compensating for drifts occurring during sleep times in access terminals |
8493964, | Jul 06 2007 | LG Electronics Inc. | Method of performing cell search in wireless communication system |
8498197, | Aug 01 2008 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Method and system for a reference signal (RS) timing loop for OFDM symbol synchronization and tracking |
8509110, | Jun 19 2009 | LG Electronics Inc | Cell searching method and apparatus in multi-carrier system |
8515472, | Jun 18 2008 | LG Electronics Inc | Method for transmitting physical layer ID information |
8526347, | Jun 10 2010 | Qualcomm Incorporated | Peer-to-peer communication with symmetric waveform for downlink and uplink |
8542783, | Jun 30 2009 | ZTE Corporation | Method for unifying secondary synchronization signal detection and frame timing synchronization |
8543151, | Jul 19 2007 | Samsung Electronics Co., Ltd.; Electronics and Telecommunications Research Institute | Method for generating downlink frame, and method for searching cell |
8547821, | Mar 12 2008 | TELEFONAKTIEBOLAGET LM ERICSSON PUBL | Method and apparatus for investigating whether a given signal is received in a given set of OFDMA resource elements |
8559296, | Aug 01 2008 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Method and system for an OFDM joint timing and frequency tracking system |
8565807, | Aug 13 2008 | RPX Corporation | Transmission of a synchronization signal within a cellular telecommunication network with temporarily increased transmitting power |
8576810, | Aug 05 2010 | SANECHIPS TECHNOLOGY CO , LTD | Method and apparatus for detecting secondary synchronization signal |
8576869, | Jun 21 2007 | Telefonaktiebolaget L M Ericsson (publ) | Simultaneous cell group and cyclic prefix detection method, apparatus and system |
8583155, | Sep 12 2008 | AVAGO TECHNOLOGIES GENERAL IP SINGAPORE PTE LTD | Method and system for frame timing acquisition in evolved universal terrestrial radio access (EUTRA) |
8588136, | Apr 20 2010 | PCTEL, Inc | System and method for SSS detection under carrier frequency offset in an orthogonal frequency-division multiple access downlink channel |
8599828, | Dec 06 2010 | SEQUANS COMMUNICATIONS | Non-coherent secondary synchronization signal detecting method, device and corresponding computer program |
8614994, | Jul 09 2009 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Method and system for implementing multiple timing domains for primary and secondary synchronization detection in EUTRA/LTE |
8619936, | Apr 11 2012 | TELEFONAKTIEBOLAGET L M ERICSSON PUBL | Clock switching algorithm based on preferred clock source |
8649401, | May 01 2007 | Qualcomm Incorporated | Generation and detection of synchronization signal in a wireless communication system |
8665799, | Sep 14 2006 | Qualcomm Incorporated | Beacon assisted cell search in a wireless communication system |
8665809, | Jun 15 2009 | Qualcomm Incorporated | Systems and methods for sending power control information |
8670734, | Nov 10 2011 | Qualcomm Incorporated | Searcher detection metrics |
8675554, | Nov 08 2010 | Apple Inc | Wireless communication device and method for performing neighbor cell analysis during continuous packet connectivity mode |
8681730, | Jul 09 2009 | Bell Northern Research, LLC | Method and system for using sign based synchronization sequences in a correlation process to reduce correlation complexity in an OFDM system |
8705399, | Oct 29 2010 | Neo Wireless LLC | Transmission of synchronization and control signals in a broadband wireless system |
8718154, | Nov 18 2009 | Qualcomm Incorporated | Monitoring and correcting timing errors in wireless communication |
8718641, | Oct 22 2010 | Electronics and Telecommunications Research Institute; Korea Advanced Institute of Science and Technology | Cell search method in wireless communication system |
8724498, | Feb 14 2012 | KEYSIGHT TECHNOLOGIES SINGAPORE SALES PTE LTD | Methods, systems, and computer readable media for performing long term evolution (LTE) channel delineation |
8730938, | Apr 08 2009 | Qualcomm Incorporated | Minimizing the impact of self synchronization on wireless communication devices |
8731573, | May 08 2009 | TELEFONAKTIEBOLAGET L M ERICSSON PUBL | Allocation of primary and secondary synchronization code sequences to cells in a wireless communication system |
8737276, | Jun 27 2012 | Qualcomm Incorporated | Method and apparatus using modified subframes |
8743813, | Feb 01 2009 | Huawei Technologies Co., Ltd. | Method for transmitting reference signals |
8768359, | Aug 20 2010 | Qualcomm Incorporated | Sample selection for secondary synchronization signal (SSS) detection |
8774230, | Apr 08 2009 | Qualcomm Incorporated | Conveying synchronization stratum information |
8780790, | Jan 07 2008 | Qualcomm Incorporated | TDD operation in wireless communication systems |
8798208, | Aug 01 2012 | Electronics and Telecommunications Research Institute | Apparatus and method for detecting code |
8798213, | Oct 15 2007 | TELEFONAKTIEBOLAGET LM ERICSSON PUBL | Communication device and method |
8804478, | Nov 10 2005 | LG Electronics Inc | Apparatus and method for transmitting data using a plurality of carriers |
8811319, | Aug 31 2009 | China Mobile Communications Corporation | Terminal access method, system and associated devices |
8817736, | Oct 29 2011 | Comcast Cable Communications, LLC | Synchronized network transmission |
8817771, | Jul 16 2010 | NXP USA, INC | Method and apparatus for detecting a boundary of a data frame in a communication network |
8824269, | Aug 01 2008 | AVAGO TECHNOLOGIES INTERNATIONAL SALES PTE LIMITED | Method and system for a reference signal (RS) timing loop for OFDM symbol synchronization and tracking |
8824533, | Jun 24 2008 | Nokia Technologies Oy | Methods, apparatuses, system and related computer program product for cell type detection |
8830983, | Dec 20 2005 | LG Electronics Inc. | Method of generating code sequence and method of transmitting signal using the same |
8830984, | Jun 18 2007 | Texas Instruments Incorporated | Mapping schemes for secondary synchronization signal scrambling |
20050100109, | |||
20080198068, | |||
20090279419, | |||
20110170527, | |||
20110195684, | |||
20110274097, | |||
20130301451, | |||
20140161044, | |||
20140254564, | |||
20140307830, | |||
20150109974, | |||
20150163707, | |||
20150280887, | |||
WO2011022404, | |||
WO2014092366, | |||
WO2014135204, |
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